• 제목/요약/키워드: Electrolyte Additive

검색결과 128건 처리시간 0.026초

Effects of the Mixing of an Active Material and a Conductive Additive on the Electric Double Layer Capacitor Performance in Organic Electrolyte

  • Yang, Inchan;Kwon, Soon Hyung;Kim, Bum-Soo;Kim, Sang-Gil;Lee, Byung-Jun;Kim, Myung-Soo;Jung, Ji Chul
    • 한국재료학회지
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    • 제25권3호
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    • pp.132-137
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    • 2015
  • The effects of the mixing of an active material and a conductive additive on the electrochemical performance of an electric double layer capacitor (EDLC) electrode were investigated. Coin-type EDLC cells with an organic electrolyte were fabricated using the electrode samples with different ball-milling times for the mixing of an active material and a conductive additive. The ball-milling time had a strong influence on the electrochemical performance of the EDLC electrode. The homogeneous mixing of the active material and the conductive additive by ball-milling was very important to obtain an efficient EDLC electrode. However, an EDLC electrode with an excessive ball-milling time displayed low electrical conductivity due to the characteristic change of a conductive additive, leading to poor electrochemical performance. The mixing of an active material and a conductive additive played a crucial role in determining the electrochemical performance of EDLC electrode. The optimal ball-milling time contributed to a homogeneous mixing of an active material and a conductive additive, leading to good electrochemical performance of the EDLC electrode.

Effect of Fluoroethylene Carbonate in the Electrolyte for LiNi0.5Mn1.5O4 Cathode in Lithium-ion Batteries

  • Kim, Jaemin;Go, Nakgyu;Kang, Hyunchul;Tron, Artur;Mun, Junyoung
    • Journal of Electrochemical Science and Technology
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    • 제8권1호
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    • pp.53-60
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    • 2017
  • Fluoroethylene carbonate (FEC) was studied as an additive for the electrolyte in lithium ion batteries with the $LiNi_{0.5}Mn_{1.5}O_4$ (LNMO) spinel cathode operating at a high potential beyond 4.7 V (vs. $Li/Li^+$). It was found that the FEC additive was electrochemically active for the $1^{st}$ charge cycle on the LNMO cathode. The presence of a large amount of FEC (more than 40 vol%) in the electrolyte caused severe side reactions with abnormally long voltage plateaus. In contrast, when the electrolyte contained less than 30 vol% FEC, the surface of the LNMO cathode was stabilized by the formation of the solid-electrolyte interphase (SEI), leading to improved cyclability. However, the resistance from the SEI limited the rate capability because of sluggish lithium transportation through the SEI and electronic insulation between the particles in the electrode.

리튬 금속 음극의 첨가제 효과에 따른 전기 화학적 특성에 관한 연구 (A Study on the Electrochemical Properties for Effect of Additive of the Lithium Metal Anode)

  • 조성미;조원일;조병원;주재백;손태원
    • 전기화학회지
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    • 제5권3호
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    • pp.159-163
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    • 2002
  • 리튬 이차 전지에서 음극으로 리튬 금속은 매우 높은 에너지 밀도를 가치고 있으나 짧은 충방전 수명, 안정성 결여 및 고율 충방전특성 불량 등의 단점을 가지고 있다. 이는 리튬큼속과 전해액의 반응에 의해 표면보호막의 형성, 침상리튬 생성, 음극 표면적의 증가로 인한 리튬석출의 불균일성에 기인되어 싸이클 효율과 수명이 저하된다. 본 연구는 전해 액에 첨가제 benzene, toluene, tetramethylethylenediamine를 넣어 줌으로 전지 테스트에서 싸이클 효율과 수명이 향상됨을 확인 할 수 있었다. Impedance 측정결과 필름 저항의 감소와 전하전이 저항의 증가로 전해액의 첨가제가 리튬 표면에 새로운 층을 형성시킴으로서 이런 구성물들이 리튬과 전해액과의 반응성을 억제시킴과 동시에 리튬이 특이적으로 표면에 흡착되어 리튬의 석출 형태가 향상된 것으로 사료된다.

Stabilizing Li2O-based Cathode/Electrolyte Interfaces through Succinonitrile Addition

  • Myeong Jun Joo;Yong Joon Park
    • Journal of Electrochemical Science and Technology
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    • 제14권3호
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    • pp.231-242
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    • 2023
  • Li2O-based cathodes utilizing oxide-peroxide conversion are innovative next-generation cathodes that have the potential to surpass the capacity of current commercial cathodes. However, these cathodes are exposed to severe cathode-electrolyte side reactions owing to the formation of highly reactive superoxides (Ox-, 1 ≤ x < 2) from O2- ions in the Li2O structure during charging. Succinonitrile (SN) has been used as a stabilizer at the cathode/electrolyte interface to mitigate cathode-electrolyte side reactions. SN forms a protective layer through decomposition during cycling, potentially reducing unwanted side reactions at the interface. In this study, a composite of Li2O and Ni-embedded reduced graphene oxide (LNGO) was used as the Li2O-based cathode. The addition of SN effectively thinned the interfacial layer formed during cycling. The presence of a N-derived layer resulting from the decomposition of SN was observed after cycling, potentially suppressing the formation of undesirable reaction products and the growth of the interfacial layer. The cell with the SN additive exhibited an enhanced electrochemical performance, including increased usable capacity and improved cyclic performance. The results confirm that incorporating the SN additive effectively stabilizes the cathode-electrolyte interface in Li2O-based cathodes.

Effect of Tris(trimethylsilyl) Phosphate Additive on the Electrochemical Performance of Nickel-rich Cathode Materials at High Temperature

  • Jang, Seol Heui;Mun, Junyoung;Kang, Dong-Ku;Yim, Taeeun
    • Journal of Electrochemical Science and Technology
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    • 제8권2호
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    • pp.162-168
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    • 2017
  • $LiNi_xCo_yMn_zO_2$ cathode materials have been the focus of much attention because of their high specific capacity. However, because of the poor interfacial stability between cathodes and electrolytes, the cycling performance of these materials fades rapidly, especially at high temperatures. In the present paper, we propose the use of tris(trimethylsilyl) phosphate (TMSPO), which contains phosphate and silyl functional groups, as a functional additive in electrolytes. The addition of TMSPO resulted in the formation of cathode electrolyte interphase (CEI) layers on the surfaces of the cathodes and effectively suppressed electrolyte decomposition reactions, even at high temperatures. As a result, cells cycled with TMSPO exhibited remarkable capacity, which remained after 50 cycles (82.0%), compared to cells cycled without TMSPO (64.6%).

A Density Functional Theory Study of Additives in Electrolytes of a Dye Sensitized Solar Cell

  • Lee, Maeng-Eun;Kang, Moon-Sung;Cho, Kwang-Hwi
    • Bulletin of the Korean Chemical Society
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    • 제34권8호
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    • pp.2491-2494
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    • 2013
  • The effect of additives in an electrolyte solution on the conversion efficiency of a dye sensitized solar cell was investigated. A density functional theory (DFT) method was used to examine the physical and chemical properties of nitrogen-containing additives adsorbed on a $TiO_2$ surface. Our results show that additives which cause lower partial charges, higher Fermi level shifts, and greater adsorption energies tend to improve the performance of DSSCs. Steric effects that prevent energy losses due to electron recombination were also found to have a positive effect on the conversion efficiency. In this work, 3-amino-5-methylthio-1H-1,2,4-triazole (AMT) has been suggested as a better additive than the most popular additive, TBP, and verified with experiments.

Effect of Oral Administration of DiakurTM (a Glucose and Electrolytes Additive) on Growth and Some Physiological Responses in Broilers Reared in a High Temperature Environment

  • Takahashi, Kazuaki;Akiba, Yukio
    • Asian-Australasian Journal of Animal Sciences
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    • 제15권9호
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    • pp.1341-1347
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    • 2002
  • An experiment was conducted to determine effects of oral administration of $Diakur^{TM}$ (an additive of glucose and electrolytes for young calves) on growth performance and some physiological responses in male broilers reared in a high temperature. A 2 by 3 factorial arrangement test of 2 temperatures (24 and $36^{\circ}C$) and 3 levels of oral administration of the glucose and electrolytes additive, $Diakur^{TM}$, (0, 150 and 300 mg/day/100 gBW) were applied in the experiment. Male broiler chicks (2 weeks of age) were assigned to six groups and received dietary and temperature treatments for 7 days. The additive of glucose and electrolytes was suspended with water and intubated into crop twice a day (08:00 and 17:00). Oral administration of the additive prevented decreases in food intake and growth rates in broilers due to exposure of the hot environment. Oral administration of the additive also improved a lowered electrolyte ($Na^+$ + $K^+$ - $Cl^-$) balance in plasma, low mitogenic response of blood mononuclear cell and an increase in glucose concentration due to exposure to the high environmental temperature. Oral administration of the additive increased rectal temperature regardless of environmental temperatures. On the other hand, blood pH, $pCO_2$ and $HCO_3$ - concentration, and plasma creatine kinase activity were not affected by the oral administration. The results suggested that oral administration of the glucose and electrolytes additive, $Diakur^{TM}$ during heat stress did not only prevent decrease in growth performance, but also normalized some physiological and immunological responses in male broilers.

LiBOB 전해액 첨가제 도입에 따른 Li(Ni1/3Co1/3Mn1/3)O2/graphite 전지의 고온특성 (Effects of Lithium Bis(Oxalate) Borate as an Electrolyte Additive on High-Temperature Performance of Li(Ni1/3Co1/3Mn1/3)O2/Graphite Cells)

  • 정지선;이혜원;이후길;유명현;이용민
    • 전기화학회지
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    • 제18권2호
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    • pp.58-67
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    • 2015
  • 음극 표면에 solid electrolyte interphase (SEI)를 형성하는 전해질 첨가제인 lithium bis(oxalate) borate (LiBOB), fluoroethylene carbonate (FEC), vinylene carbonate (VC), 2-(triphenylphosphoranylidene) succinic anhydride (TPSA)를 $Li(Ni_{1/3}Co_{1/3}Mn_{1/3})O_2$ (NCM)/graphite 전지에 도입하여 고온 저장 특성을 비교하였다. 각 전지를 50%의 충전상태(stage of charge, SOC)에서, 고온 저장($60^{\circ}C$, 20일) 시킨 이후의 용량 유지율을 확인한 결과, LiBOB 1 wt.%가 가장 우수한 용량 유지 특성(초기 방전용량 대비 86.7%)을 나타내었다. LiBOB 1 wt.%의 경우 고온 저장 전후의 전지 저항 증가 및 SEI 두께 변화가 가장 적었고, 이는 음극 SEI에 포함된 다량의 semi-carbonate 물질과 연관성이 높다고 판단된다. 또한, LiBOB 1 wt.%가 포함된 NCM/graphite 전지의 상온($25^{\circ}C$) 및 고온수명($60^{\circ}C$) 특성도 기준 전해액(1.15 M lithium hexafluorophosphate (LiPF6) in ethylene carbonate/ethyl methyl carbonate (EC/EMC, 3/7 by volume))보다 각각 6%와 9% 향상된 결과를 보여주었다. 따라서, LiBOB이 상온 성능을 동등 이상으로 유지하면서도 고온 특성을 개선할 수 있는 우수한 전해액 첨가제로 판단된다.

전기화학형 광전변환 셀의 고효율 전해질 제작에 관한 실험적 고찰 (Experimental Investigation on High Efficient Electrolytes of Electrochemical Photovoltaic Cells)

  • 김두환;한치환;성열문
    • 전기학회논문지
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    • 제60권1호
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    • pp.100-104
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    • 2011
  • In this work, an optimum condition of electrolytes preparation for photovoltaic cells application was investigated experimentally in terms of impedance and conversion efficiency of the cells. 3-methoxyppropionitrie and redox pairs with LiI and $I_2$ were used as stable solvents for fabrication of electrolyte. Efficiency comparison of the prepared cells carried out for various additives and ionic liquids. From the results, there was an optimum concentration (about 0.3 M) of ionic liquids for efficient cell fabrication. For case of electrolyte using single DMAp additive, the maximum conversion efficiency of the cell was 6.4%($V_{oc}$: 0.78V, $J_{sc}$: 14.4 mA/$cm^2$, ff: 0.57). For case of electrolyte using both DMAp and CEMim additives, the maximum conversion efficiency of the cell was 7.2%($V_{oc}$: 0.79V, $J_{sc}$: 16 mA/$cm^2$, ff: 0.57). From the result of electrochemical impedance measurement, both Z1 and Z3 values of binary additives-based cell decreased compared to those of single additive-based. This is due to the decreased in internal and charge transfer resistivities of the cells.

전해질 첨가제가 리튬 바나듐 옥사이드 전극의 성능에 미치는 영향 (Effect of Electrolyte Additive on the Electrochemical Characteristics of Lithium Vanadium Oxide Anode)

  • 이제남
    • 전기화학회지
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    • 제21권3호
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    • pp.55-60
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    • 2018
  • 최근 휴대용 기기의 급속한 발전이 이뤄지고, 다양한 전자제품에서 높은 성능의 이차 전지가 요구됨에 따라 고에너지밀도 특성을 가능케 하는 전극 재료의 연구가 주목받고 있다. 음극의 경우, 기존에 사용하고 있는 흑연재료를 대체하기 위하여 실리콘, 주석 등의 소재와 전이금속 산화물을 새로운 음극재료로 사용하려고 한다. 리튬 바나듐 옥사이드는 리튬 전이금속 산화물 기반의 음극 소재로서 흑연 대비 1.5배의 부피당 용량을 나타낼 수 있다는 장점을 가지고 있으나, 낮은 전기전도도와 입자 파쇄현상으로 인하여 전해질의 분해가 가속화되어 성능이 열화되는 문제점을 가지고 있다. 본 연구에서는 이러한 문제를 개선시키기 위하여 전해질 첨가제를 도입하여 전극/전해질 계면의 개질에 따른 리튬 바나듐 옥사이드의 전기화학적 거동 특성을 보고자 하였다.